Kishore Kandasamy, Yue Yu, Muhammad Waqas Iqbal, Luis Ricardez-Sandoval, Aiping Yu, David S. A. Simakov
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引用次数: 0
Abstract
Copper-doped ceria (CuCeO2) catalysts with 0–26.5 Cu/(Cu+Ce) at% were synthesized via the reverse microemulsion method. X-ray diffraction analysis of freshly synthesized and spent (post-reaction) catalysts showed no separate phase of copper or copper oxide, indicating that Cu was incorporated into the CeO2 lattice, replacing Ce. Temperature programmed desorption experiments showed that the activation energy of CO2 desorption increased for higher Cu loadings, indicating stronger CO2 adsorption. This phenomenon was attributed to enhanced formation of oxygen vacancies due to Cu doping. X-ray photoelectron spectroscopy further confirmed the enhanced generation of oxygen vacancies due to Cu incorporation. Catalytic performance evaluation with the H2/CO2 feed in the 300–600 °C range showed that all catalysts were 100 % selective to CO generation, with higher Cu loadings resulting in CO2 conversion close to equilibrium values at 500–600 °C. The activation energy of the reaction, determined through reaction tests, exhibited inverse relationship with the activation energy of CO2 desorption. The relationship between these two energy barriers is explored, providing valuable insights into the mechanism of RWGS activity enhancement.
通过反向微乳液法合成了铜掺杂铈(CuCeO2)催化剂,Cu/(Cu+Ce) at% 为 0-26.5。对新合成催化剂和废催化剂(反应后)的 X 射线衍射分析表明,氧化铜中没有独立的铜相,这表明 Cu 已融入 CeO2 晶格中,取代了 Ce。温度编程解吸实验表明,铜负载量越高,二氧化碳解吸的活化能越大,这表明二氧化碳的吸附能力越强。这一现象归因于铜掺杂增强了氧空位的形成。X 射线光电子能谱进一步证实了由于掺入了铜,氧空位的生成得到了增强。以 H2/CO2 为原料在 300-600 °C 范围内进行的催化性能评估表明,所有催化剂对 CO 的生成都具有 100% 的选择性,较高的 Cu 负载可使 CO2 转化率接近 500-600 °C 时的平衡值。通过反应测试确定的反应活化能与二氧化碳解吸活化能呈线性关系。对这两种能量障碍之间的关系进行了探讨,为了解 RWGS 活性增强的机理提供了宝贵的见解。
ChemNanoMatEnergy-Energy Engineering and Power Technology
CiteScore
6.10
自引率
2.60%
发文量
236
期刊介绍:
ChemNanoMat is a new journal published in close cooperation with the teams of Angewandte Chemie and Advanced Materials, and is the new sister journal to Chemistry—An Asian Journal.